• Codeforces-501b


    Misha hacked the Codeforces site. Then he decided to let all the users change their handles. A user can now change his handle any number of times. But each new handle must not be equal to any handle that is already used or that was used at some point.

    Misha has a list of handle change requests. After completing the requests he wants to understand the relation between the original and the new handles of the users. Help him to do that.

    Input

    The first line contains integer q (1 ≤ q ≤ 1000), the number of handle change requests.

    Next q lines contain the descriptions of the requests, one per line.

    Each query consists of two non-empty strings old and new, separated by a space. The strings consist of lowercase and uppercase Latin letters and digits. Strings old andnew are distinct. The lengths of the strings do not exceed 20.

    The requests are given chronologically. In other words, by the moment of a query there is a single person with handle old, and handle new is not used and has not been used by anyone.

    Output

    In the first line output the integer n — the number of users that changed their handles at least once.

    In the next n lines print the mapping between the old and the new handles of the users. Each of them must contain two strings, old and new, separated by a space, meaning that before the user had handle old, and after all the requests are completed, his handle is new. You may output lines in any order.

    Each user who changes the handle must occur exactly once in this description.

    Example
    Input
    5
    Misha ILoveCodeforces
    Vasya Petrov
    Petrov VasyaPetrov123
    ILoveCodeforces MikeMirzayanov
    Petya Ivanov
    
    Output
    3
    Petya Ivanov
    Misha MikeMirzayanov
    Vasya VasyaPetrov123

    题解:就是给a=b,b=c.让你输出a=c.(中间省略b);可以利用map容器,用其键值和映射分别表示名字的后一个单词和前一个单词;然后查找器键值是否出现过,若出现过将其连接。

    AC代码为:

    #include<iostream>
    #include<map>
    #include<string>
    using namespace std;
    int main() {
    int n;
    while (cin >> n) {
    map<string, string> str;
    while (n--) {
    string s1, s2;
    cin >> s1 >> s2;
    if (!str.count(s1)) str[s2] = s1;
    else {
    str[s2] = str[s1];
    str.erase(s1);
    }
    }
    cout << str.size() << endl;
    for (map<string, string>::iterator it = str.begin(); it != str.end(); it++)
    cout << it->second << " " << it->first << endl;
    }
    return 0;
    }


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  • 原文地址:https://www.cnblogs.com/csushl/p/9386625.html
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